Literature DB >> 17316686

Modular proteins from the Drosophila sallimus (sls) gene and their expression in muscles with different extensibility.

Christoph Burkart1, Feng Qiu, Sigrun Brendel, Vladimir Benes, Petra Hååg, Siegfried Labeit, Kevin Leonard, Belinda Bullard.   

Abstract

The passive elasticity of the sarcomere in striated muscle is determined by large modular proteins, such as titin in vertebrates. In insects, the function of titin is divided between two shorter proteins, projectin and sallimus (Sls), which are the products of different genes. The Drosophila sallimus (sls) gene codes for a protein of 2 MDa. The N-terminal half of the protein is largely made up of immunoglobulin (Ig) domains and unique sequence; the C-terminal half has two stretches of sequence similar to the elastic PEVK region of titin, and at the end of the molecule there is a region of tandem Ig and fibronectin domains. We have investigated splicing pathways of the sls gene and identified isoforms expressed in different muscle types, and at different stages of Drosophila development. The 5' half of sls codes for zormin and kettin; both proteins contain Ig domains and can be expressed as separate isoforms, or as larger proteins linked to sequence downstream. There are multiple splicing pathways between the kettin region of sls and sequence coding for the two PEVK regions. All the resulting protein isoforms have sequence derived from the 3' end of the sls gene. Splicing of exons varies at different stages of development. Kettin RNA is predominant in the embryo, and longer transcripts are expressed in larva, pupa and adult. Sls isoforms in the indirect flight muscle (IFM) are zormin, kettin and Sls(700), in which sequence derived from the end of the gene is spliced to kettin RNA. Zormin is in both M-line and Z-disc. Kettin and Sls(700) extend from the Z-disc to the ends of the thick filaments, though, Sls(700) is only in the myofibril core. These shorter isoforms would contribute to the high stiffness of IFM. Other muscles in the thorax and legs have longer Sls isoforms with varying amounts of PEVK sequence; all span the I-band to the ends of the thick filaments. In muscles with longer I-bands, the proportion of PEVK sequence would determine the extensibility of the sarcomere. Alternative Sls isoforms could regulate the stiffness of the many fibre types in Drosophila muscles.

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Year:  2007        PMID: 17316686     DOI: 10.1016/j.jmb.2007.01.059

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  48 in total

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3.  Extensive and modular intrinsically disordered segments in C. elegans TTN-1 and implications in filament binding, elasticity and oblique striation.

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4.  A transcriptomics resource reveals a transcriptional transition during ordered sarcomere morphogenesis in flight muscle.

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5.  An embryonic myosin converter domain influences Drosophila indirect flight muscle stretch activation, power generation and flight.

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6.  A new experimental model to study force depression: the Drosophila jump muscle.

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7.  Drosophila model of myosin myopathy rescued by overexpression of a TRIM-protein family member.

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8.  Nanometer-scale structure differences in the myofilament lattice spacing of two cockroach leg muscles correspond to their different functions.

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Journal:  J Exp Biol       Date:  2020-05-04       Impact factor: 3.312

9.  In vivo RNAi rescue in Drosophila melanogaster with genomic transgenes from Drosophila pseudoobscura.

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Review 10.  Dynamic regulation of sarcomeric actin filaments in striated muscle.

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Journal:  Cytoskeleton (Hoboken)       Date:  2010-11
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